Agarwal Mangilal, Xing Qi, Shim Bong Sup, Kotov Nicholas, Varahramyan Kody, Lvov Yuri
Institute for Micromanufacturing, Louisiana Tech University, Ruston, LA 71272, USA.
Nanotechnology. 2009 May 27;20(21):215602. doi: 10.1088/0957-4484/20/21/215602. Epub 2009 May 6.
Composite nanocoating of poly(3,4-ethylenedioxythiophene)-poly(styrenesulfonate) (PEDOT-PSS) and aqueous dispersion of carbon nanotubes (CNT-PSS) on lignocellulose wood microfibers has been developed to make conductive microfibers and paper sheets. To construct the multilayers on wood microfibers, cationic poly(ethyleneimine) (PEI) has been used in alternate deposition with anionic conductive PEDOT-PSS and solubilized CNT-PSS. Using a Keithley microprobe measurement system, current-voltage measurements have been carried out on single composite microfibers after deposition of each layer to optimize the electrical properties of the coated microfibers. The conductivity of the resultant wood microfibers was in the range of 10(-2)-2 S cm(-1) depending on the architecture of the coated layer. Further, the conductivity of the coated wood microfibers increased up to 20 S cm(-1) by sandwiching multilayers of conductive co-polymer PEDOT-PSS with CNT-PSS through a polycation (PEI) interlayer. Moreover, paper hand sheets were manufactured from these coated wood microfibers with conductivity ranging from 1 to 20 S cm(-1). A paper composite structure consisting of conductive/dielectric/conductive layers that acts as a capacitor has also been fabricated and is reported.
已开发出在木质纤维素木微纤维上的聚(3,4-乙撑二氧噻吩)-聚(苯乙烯磺酸盐)(PEDOT-PSS)和碳纳米管水分散体(CNT-PSS)的复合纳米涂层,以制备导电微纤维和纸张。为了在木微纤维上构建多层结构,阳离子聚(乙烯亚胺)(PEI)已与阴离子导电PEDOT-PSS和增溶的CNT-PSS交替沉积使用。使用吉时利微探针测量系统,在每一层沉积后对单个复合微纤维进行电流-电压测量,以优化涂覆微纤维的电学性能。所得木微纤维的电导率根据涂层结构在10^(-2)-2 S cm^(-1)范围内。此外,通过聚阳离子(PEI)中间层将导电共聚物PEDOT-PSS与CNT-PSS的多层结构夹在中间,涂覆木微纤维的电导率提高到20 S cm^(-1)。此外,由这些电导率范围为1至20 S cm^(-1)的涂覆木微纤维制成了手抄纸。还制备并报道了一种由导电/电介质/导电层组成的纸复合结构,其可作为电容器。